forked from TrueCloudLab/neoneo-go
b483c38593
We make it explicit in the appropriate Block/Transaction structures, not via a singleton as C# node does. I think this approach has a bit more potential and allows better packages reuse for different purposes.
201 lines
5.8 KiB
Go
201 lines
5.8 KiB
Go
package block
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import (
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"encoding/json"
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"errors"
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"github.com/nspcc-dev/neo-go/pkg/config/netmode"
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"github.com/nspcc-dev/neo-go/pkg/core/transaction"
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"github.com/nspcc-dev/neo-go/pkg/crypto/hash"
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"github.com/nspcc-dev/neo-go/pkg/encoding/address"
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"github.com/nspcc-dev/neo-go/pkg/io"
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"github.com/nspcc-dev/neo-go/pkg/util"
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)
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// Base holds the base info of a block
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type Base struct {
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// Version of the block.
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Version uint32
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// hash of the previous block.
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PrevHash util.Uint256
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// Root hash of a transaction list.
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MerkleRoot util.Uint256
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// Timestamp is a millisecond-precision timestamp.
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// The time stamp of each block must be later than previous block's time stamp.
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// Generally the difference of two block's time stamp is about 15 seconds and imprecision is allowed.
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// The height of the block must be exactly equal to the height of the previous block plus 1.
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Timestamp uint64
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// index/height of the block
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Index uint32
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// Contract address of the next miner
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NextConsensus util.Uint160
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// Script used to validate the block
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Script transaction.Witness
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// Network magic number this block belongs to. This one actually is not
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// a part of the wire-representation of Block, but it's absolutely
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// necessary for correct signing/verification.
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Network netmode.Magic
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// Hash of this block, created when binary encoded (double SHA256).
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hash util.Uint256
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// Hash of the block used to verify it (single SHA256).
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verificationHash util.Uint256
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}
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// baseAux is used to marshal/unmarshal to/from JSON, it's almost the same
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// as original Base, but with Nonce and NextConsensus fields differing and
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// Hash added.
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type baseAux struct {
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Hash util.Uint256 `json:"hash"`
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Version uint32 `json:"version"`
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PrevHash util.Uint256 `json:"previousblockhash"`
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MerkleRoot util.Uint256 `json:"merkleroot"`
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Timestamp uint64 `json:"time"`
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Index uint32 `json:"index"`
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NextConsensus string `json:"nextconsensus"`
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Witnesses []transaction.Witness `json:"witnesses"`
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}
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// Verify verifies the integrity of the Base.
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func (b *Base) Verify() bool {
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// TODO: Need a persisted blockchain for this.
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return true
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}
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// Hash returns the hash of the block.
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func (b *Base) Hash() util.Uint256 {
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if b.hash.Equals(util.Uint256{}) {
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b.createHash()
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}
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return b.hash
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}
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// VerificationHash returns the hash of the block used to verify it.
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func (b *Base) VerificationHash() util.Uint256 {
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if b.verificationHash.Equals(util.Uint256{}) {
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b.createHash()
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}
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return b.verificationHash
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}
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// DecodeBinary implements Serializable interface.
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func (b *Base) DecodeBinary(br *io.BinReader) {
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b.decodeHashableFields(br)
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witnessCount := br.ReadVarUint()
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if br.Err == nil && witnessCount != 1 {
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br.Err = errors.New("wrong witness count")
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return
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}
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b.Script.DecodeBinary(br)
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}
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// EncodeBinary implements Serializable interface
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func (b *Base) EncodeBinary(bw *io.BinWriter) {
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b.encodeHashableFields(bw)
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bw.WriteVarUint(1)
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b.Script.EncodeBinary(bw)
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}
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// GetSignedPart returns serialized hashable data of the block.
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func (b *Base) GetSignedPart() []byte {
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buf := io.NewBufBinWriter()
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buf.WriteU32LE(uint32(b.Network))
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// No error can occure while encoding hashable fields.
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b.encodeHashableFields(buf.BinWriter)
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return buf.Bytes()
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}
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// createHash creates the hash of the block.
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// When calculating the hash value of the block, instead of calculating the entire block,
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// only first seven fields in the block head will be calculated, which are
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// version, PrevBlock, MerkleRoot, timestamp, and height, the nonce, NextMiner.
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// Since MerkleRoot already contains the hash value of all transactions,
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// the modification of transaction will influence the hash value of the block.
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func (b *Base) createHash() {
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bb := b.GetSignedPart()
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b.verificationHash = hash.Sha256(bb)
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b.hash = hash.Sha256(b.verificationHash.BytesBE())
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}
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// encodeHashableFields will only encode the fields used for hashing.
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// see Hash() for more information about the fields.
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func (b *Base) encodeHashableFields(bw *io.BinWriter) {
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bw.WriteU32LE(b.Version)
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bw.WriteBytes(b.PrevHash[:])
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bw.WriteBytes(b.MerkleRoot[:])
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bw.WriteU64LE(b.Timestamp)
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bw.WriteU32LE(b.Index)
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bw.WriteBytes(b.NextConsensus[:])
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}
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// decodeHashableFields decodes the fields used for hashing.
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// see Hash() for more information about the fields.
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func (b *Base) decodeHashableFields(br *io.BinReader) {
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b.Version = br.ReadU32LE()
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br.ReadBytes(b.PrevHash[:])
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br.ReadBytes(b.MerkleRoot[:])
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b.Timestamp = br.ReadU64LE()
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b.Index = br.ReadU32LE()
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br.ReadBytes(b.NextConsensus[:])
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// Make the hash of the block here so we dont need to do this
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// again.
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if br.Err == nil {
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b.createHash()
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}
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}
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// MarshalJSON implements json.Marshaler interface.
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func (b Base) MarshalJSON() ([]byte, error) {
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aux := baseAux{
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Hash: b.Hash(),
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Version: b.Version,
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PrevHash: b.PrevHash,
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MerkleRoot: b.MerkleRoot,
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Timestamp: b.Timestamp,
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Index: b.Index,
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NextConsensus: address.Uint160ToString(b.NextConsensus),
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Witnesses: []transaction.Witness{b.Script},
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}
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return json.Marshal(aux)
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}
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// UnmarshalJSON implements json.Unmarshaler interface.
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func (b *Base) UnmarshalJSON(data []byte) error {
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var aux = new(baseAux)
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var nextC util.Uint160
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err := json.Unmarshal(data, aux)
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if err != nil {
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return err
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}
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nextC, err = address.StringToUint160(aux.NextConsensus)
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if err != nil {
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return err
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}
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if len(aux.Witnesses) != 1 {
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return errors.New("wrong number of witnesses")
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}
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b.Version = aux.Version
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b.PrevHash = aux.PrevHash
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b.MerkleRoot = aux.MerkleRoot
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b.Timestamp = aux.Timestamp
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b.Index = aux.Index
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b.NextConsensus = nextC
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b.Script = aux.Witnesses[0]
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if !aux.Hash.Equals(b.Hash()) {
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return errors.New("json 'hash' doesn't match block hash")
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}
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return nil
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}
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